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Biomedical subjects

C C Fraser

Publications and source records attributed to C C Fraser.

11 recordsLinked to original sources

Cloning, expression, and function of BLAME, a novel member of the CD2 family.

The CD2 family is a growing family of Ig domain-containing cell surface proteins involved in lymphocyte activation. Here we describe the cloning and expression analysis of a novel member of this family, B lymphocyte activator macrophage expressed (BLAME). BLAME shares the structural features of the CD2 family containing an IgV and IgC2 domain and clusters with the other family members on chromosome 1q21. Quantitative PCR and Northern blot analysis show BLAME to be expressed in lymphoid tissue and, more specifically, in some populations of professional APCs, activated monocytes, and DCS: Retroviral forced expression of BLAME in hematopoietic cells of transplanted mice showed an increase in B1 cells in the peripheral blood, spleen, lymph nodes, and, most strikingly, in the peritoneal cavity. These cells do not express CD5 and are CD23(low)Mac1(low), characteristics of the B1b subset. BLAME may therefore play a role in B lineage commitment and/or modulation of signal through the B cell receptor.

Amino Acid Sequence↗

External quality assessment: currently used criteria for evaluating performance in European countries, and criteria for future harmonization.

A questionnaire was circulated to European countries seeking information on the criteria used for acceptable performance in external quality assessment schemes. Responses were obtained from 21 countries. Fixed limits are used in 13 countries but the basis for these varies widely and includes clinical decision making, biological variation, views of experts, the state-of-the-art, and combinations of approaches. Variable limits based upon statistical analysis of the performance attained are used in 8 countries. The many advantages of harmonization in Europe have prompted the development of criteria based upon within- and between-subject biological variation for use in schemes which circulate single specimen challenges. Currently used criteria, which show much diversity, are compared with these proposals, and the empirical nature of the majority of the former is demonstrated.

Chemistry, Clinical↗

Human allogeneic stem cell maintenance and differentiation in a long-term multilineage SCID-hu graft.

The ability to determine the functional capacity of putative human hematopoietic stem cell (HSC) populations requires in vivo assays in which long-term multilineage differentiation can be assessed. We hypothesized that if human fetal bone was transplanted adjacent to a fetal thymus fragment in severe combined immunodeficient (SCID) mice, a conjoint organ might form in which HSC in the human bone marrow (BM) would mimic human multilineage differentiation into progenitor cells, B cells, and myeloid cells; undergo self-renewal; and migrate to and differentiate into T cells within the thymic microenvironment. To test this possibility, SCID mice were transplanted subcutaneously with HLA class I mismatched fetal bone, thymus, and spleen fragments (SCID-hu BTS). We found that the BM of SCID-hu BTS grafts maintained B cells, myeloid cells, CD34+ cells for at least 36 weeks posttransplant. Assayable hematopoietic progenitors colony-forming units-granulocyte-macrophage were present in 100% (66/66) of grafts over a period of 28 weeks. Cells with a HSC phenotype (CD34+Thy-1+Lin-) were maintained for 20 weeks in SCID-hu BTS grafts. These CD34+Thy-1+Lin- cells had potent secondary multilineage reconstituting potential when isolated and injected into a secondary HLA mismatched SCID-hu bone assay and analyzed 8 weeks later. In addition, early progenitors within the BM of SCID-hu BTS grafts were capable of migrating to the human thymus and undergoing differentiation through immature CD4+CD8+ double-positive T cells and produce mature T cells with a CD4+CD8- or CD8+CD4- phenotype that could be detected for at least 36 weeks. Phenotypically defined human fetal liver (FL) and umbilical cord blood (UCB) hematopoietic stem cell populations were injected into irradiated SCID-hu BTS grafts to assess their multilineage repopulating capacity and to assess the ability of the BTS system to provide an environment where multiple lineages might differentiate from a common stem cell pool. Injection of irradiated grafts with FL HSC or UCB HSC cells resulted in donor-derived B cells, myeloid cells, immature and mature T cells, and CD34+ cells in individual grafts when analyzed 8 weeks postreconstitution, further showing the multipotential nature of these stem cell populations. In addition, a strong correlation was observed between maintenance of host graft-derived CD8+ cells and failure of donor stem cell engraftment.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals↗

Circulation of human hematopoietic cells in severe combined immunodeficient mice after Cl2MDP-liposome-mediated macrophage depletion.

Intravenous injection of dichloromethylene diphosphonate (Cl2MDP) encapsulated in liposomes results in specific elimination of macrophages in the spleen and liver of normal mice. Severe combined immunodeficient (SCID) mice were treated with Cl2MDP-liposomes followed by injection of human peripheral blood leukocytes. Control SCID mice had no detectable human cells within 72 hours as determined by fluorescence-activated cell sorting (FACS) analysis. However, Cl2MDP-liposome-treated animals maintained a large proportion (%) of human cells in peripheral blood and spleen for at least 12 days. Cl2MDP-liposome-injected SCID mice that had previously been implanted with human fetal thymus and liver showed a transient increase in human cell content in peripheral blood, and an accumulation of human cells specific to the white pulp of the spleen. These results indicate that murine mononuclear phagocytic cells may play an important role in the clearance of human cells injected intravenously or generated endogenously in SCID mice and that Cl2MDP-liposome-mediated macrophage depletion allows human hematopoietic cells to circulate and survive in SCID mice, thereby expanding the potential for studying human cellular processes in vivo.

Animals↗

Specific unresponsiveness to a retrovirally-transferred class I antigen is controlled through the helper pathway.

To investigate the potential role for gene therapy in induction of tolerance to solid organ grafts, we used a murine model based on the introduction of an allogeneic MHC class I gene (H-2Kb) into hematopoietic cells of congenic animals differing only at the class I locus. The H-2Kb gene was placed into a retroviral vector under the control of regulatory sequences of the myeloproliferative sarcoma virus long terminal repeat. Transplantation of H-2Kb retrovirus-transduced autologous bone marrow into B10.AKM (Kk Ik Dq) recipients resulted in detectable levels of H-2Kb RNA and cell surface protein in lymphoid and myeloid lineages. H-2Kb expression was significant, although variable, in bone marrow Mac1+ cells, in splenic B cells, and in CD4+/CD8+ thymocytes 8 wk post-bone marrow transplantation. The recipients of the H-2Kb-transduced bone marrow showed specifically delayed rejection of B10.MBR (Kb Ik Dq) skin grafts disparate only for Kb. However, B10.MBR skin grafts were rapidly rejected when grafted simultaneously with skin grafts from B10 (Kb Ib Db) mice, a strain bearing additional third party alloantigens in association with Kb. Our experiments suggest that the hyporesponsive state induced by using the retrovirally mediated gene transfer model is characterized by the persistence of H-2Kb-specific cytolytic T cell precursors, which may be inactive because of deficient T cell help. Tolerance to Kb induced by this approach may therefore be restricted to T helper cell lineages.

3T3 Cells↗

Alterations in lymphopoiesis after hematopoietic reconstitution with IL-7 virus-infected bone marrow.

Murine bone marrow was infected with a helper-free recombinant retrovirus expressing the mIL-7 gene and used to reconstitute lethally irradiated hosts. Twenty-three percent of mIL-7 retrovirus-infected recipients became moribund within 4-16 wk posttransplant with splenomegaly and hyperplastic lymph nodes, elevated white blood cell counts, plus other noticeable abnormalities including, in one animal, lymphocytic ascites. FACS analysis of hematopoietic tissue in diseased mice revealed marked alterations in T cell subsets of spleen and lymph nodes. These differences in extrathymic tissues compared with control animals included increases in CD4(-)-CD8+ lymphocytes and most strikingly the appearance of large numbers of an unusual CD4(+)-CD8+ T cell population with other characteristics of immature thymocytes (CD3lo-Thy1(+)-HSAhi). 3H-thymidine incorporation assays performed on extrathymic lymphocytes from a lymph node or ascites of two affected mice showed high levels of proliferation in the absence of either CD3 cross linking or exogenous IL-7 stimulation. Interestingly, in contrast to the effects noted on peripheral lymphoid tissues, no alteration in thymic size was noted and the proportion of CD4(+)-CD8+ cells was generally decreased with corresponding increases in CD4+ or CD8+ or CD4(-)-CD8- cells. These results provide further evidence of the involvement of IL-7 in the development and proliferation of early T cells in vivo and point to the possibility of IL-7 involvement in extrathymic expansion of a primitive class of T cells, the functional nature of which remains to be elucidated.

Animals↗

Proliferation of totipotent hematopoietic stem cells in vitro with retention of long-term competitive in vivo reconstituting ability.

Marrow cells from male mice pretreated with 5-fluorouracil were infected with helper-free neomycin-resistant (neor) recombinant retrovirus and then used to initiate long-term cultures (LTC) on irradiated adherent marrow feeder layers. Four weeks later LTC cells were harvested and injected into lethally irradiated female recipients either alone or together with 2 x 10(5) female marrow cells with selectively compromised long-term repopulating potential to assay for totipotent and competitive repopulating units (CRU), respectively. A total of 46 unique clones were detected in recipients 5 wk to 7 mo after transplant. Half of these clones (22 of 46) included both lymphoid and myeloid progeny. Eight of the 22 lympho-myeloid clones were represented in multiple recipients, in some cases after injection of limiting numbers of CRU, thus indicating repopulation from sibling totipotent stem cells generated during the initial 4-wk period in LTC. Serial analysis of cells released into the nonadherent fraction of LTC for up to 7 wk provided additional evidence of the continuing proliferation in LTC of totipotent stem cells with long-term repopulating potential. The frequency of CRU determined from limiting-dilution analyses of LTC-derived cells was the same for recipients analyzed at 5 wk or 7 mo after transplantation and was also the same whether marrow or thymus repopulation was assessed. These assays showed that concurrent with the expansion of some totipotent cells revealed by retroviral marking, there was a slow but net 6.5-fold decrease in total CRU numbers after 4 wk in LTC. These results show the capacity of some totipotent hematopoietic stem cells to be maintained and amplified over extensive time periods in vitro without diminution of their long-term in vivo repopulating potential. These results also set the stage for analogous studies of human stem cell selection and expansion in vitro, which may be important for future gene therapy protocols.

Animals↗

The human hematopoietic stem cell in vitro and in vivo.

A quantitative assay for a primitive human hematopoietic cell has been developed. The cell identified has been assigned the operational designation of long-term culture (LTC)-initiating cell based on its ability when cultured on supportive fibroblast monolayers to give rise to daughter cell(s) detectable by standard in vitro colony assays. Three lines of evidence support the view that the LTC-initiating cell assay may allow the relatively specific enumeration of totipotent cells with in vivo reconstituting potential. These involve the demonstration: (1) that conditions in analogous murine long-term cultures stimulate the extensive amplification (self-renewal) of some totipotent long-term repopulating cells, (2) that most of the LTC-initiating cells in normal human bone marrow are phenotypically different from most of the colony-forming cells present in the same cell suspensions in their possession of a number of characteristics specifically associated with transplantable stem cells; and (3) that cultured marrow cells from patients with chronic myeloid leukemia which, after maintenance under LTC conditions for 10 days contain some normal LTC-initiating cells but no detectable leukemic LTC-initiating cells, can after autografting reconstitute the hematopoietic system with normal cells.

Animals↗

Expansion in vitro of retrovirally marked totipotent hematopoietic stem cells.

A large number of biologic, technological, and clinical studies await the development of procedures that will allow totipotent hematopoietic stem cells to be expanded in vitro. Previous work has suggested that hematopoiesis can be reconstituted using transplants of cells from long-term marrow cultures. We have used retrovirus mediated gene transfer to demonstrate that marked totipotent hematopoietic stem cells are both maintained and can be amplified in such cultures, and then subsequently regenerate and sustain lympho-myeloid hematopoiesis in irradiated recipients. Marrow cells from 5-fluorouracil-treated male mice were infected with a recombinant virus carrying the neomycin resistence gene and seeded onto irradiated adherent layers of pre-established, long-term marrow cultures of female origin. At 4 weeks, cells from individual cultures were transplanted into single or multiple female recipients. Southern blot analysis of hematopoietic tissue 45 days posttransplantation showed retrovirally marked clones common to lymphoid and myeloid tissues in 14 of 23 mice examined. Strikingly, for 3 of 4 long-term cultures, multiple recipients of cells from a single flask showed marrow and thymus repopulation with the same unique retrovirally marked clone. These results establish the feasibility of retroviral-marking techniques to demonstrate the maintenance of totipotent lympho-myeloid stem cells for at least 4 weeks in the long-term marrow culture system and provide the first evidence of their proliferation in vitro. Therefore, such cultures may serve as a starting point for identifying factors that stimulate totipotent hematopoietic stem cell expansion.

Animals↗

Retrovirus-mediated gene transfer to purified hemopoietic stem cells with long-term lympho-myelopoietic repopulating ability.

Despite recent advances in marrow stem cell purification, controversy about the nature and heterogeneity of cells with the potential for long-term repopulation of lymphoid and myeloid tissues remains. Essential to the resolution of these questions is the use of strategies to track the progeny produced in vivo from individual hemopoietic stem cells in purified populations. We have used a procedure for obtaining highly enriched populations of stem cells with competitive repopulating ability from male mice (pretreated with 5-fluorouracil), and in this paper we present the results of studies in which small numbers (150-2000) of these cells were exposed to supernatant containing a helper-free recombinant retrovirus carrying the neomycin-resistance gene and then were transplanted together with 2 x 10(5) "compromised" female marrow cells into irradiated female recipients. Male cells--i.e., progeny of purified stem cells--were found in one or more of the tissues examined (peripheral blood, marrow, spleen, and thymus) in 28 of 28 mice evaluated at various times between 35 and 196 days after transplantation. In 20 of these mice (71%), the neomycin-resistance gene was also detected, although not always at a level that correlated with the proportion of male cells. Analysis of spleen colonies (day 12) generated in secondary recipients confirmed that viral integration was confined to male repopulating cells. In three mice direct evidence of a common clone in both lymphoid and myeloid tissues was also obtained. These results show the feasibility of retrovirus-mediated gene transfer to highly purified populations of lympho-myelopoietic stem cells with long-term (6 months) repopulating potential by using a supernatant infection protocol. This approach should facilitate further analysis of hemopoietic stem cell control in vivo and find future applications in the evolving use of bone marrow transplantation for hemopoietic rescue and gene therapy.

Animals↗